? Project 3 The progression of primary brain tumors in children from low grade (LGGs) to lethal high grade gliomas (HGGs) typically occurs over a 10 year period and is not prevented by traditional therapies. Although immunotherapy seems to be an ideal alternative therapeutic approach for LGG tumors due to the ample time window between resection and recurrence during which anti-tumor immunity can be stimulated, attempts to develop the approach have been unsuccessful. The most common mutation found in LGGs, IDHR132H, is located in the isocitrate dehydrogenase 1 (IDH1) gene and is ubiquitously expressed in all tumor cells. Unfortunately, although its prevalence and ubiquity make IDHR132H an excellent tumor vaccine target, it has proven to be very poorly immunogenic, especially in generating CTL responses. This Project aims to overcome this hurdle by establishing proof of principle for a novel monocyte vaccination strategy for IDHR132H+ gliomas. The approach exploits an endogenous antigen (Ag) cross-presentation presentation pathway that uses resident splenic dendritic cells (DC) to significantly improve the survival of mice bearing intracranial IDH1R132H+ CT2A tumors. Our preliminary data suggest that this strategy may stimulate anti-IDH1R132H CD8+ T cell responses. Building on these findings and additional preliminary data showing that Flt3L markedly improves monocyte vaccine efficacy in mouse models of melanoma, the Project will test the hypotheses that monocyte vaccination can induce effective anti-IDH1R132H CTL responses in mice, that these responses can be increased by Flt3L administration, and that monocyte vaccination will safely stimulate robust anti-IDH1R132H immune responses in humans. The objectives of this project are to determine the specific mechanisms by which monocyte vaccination inhibits IDH1R132H glioma growth (Aim 1), to determine if Flt3L improves the efficacy of monocyte vaccination for IDH1R132H-expressing gliomas in mice (Aim 2), and to determine if IDH1R132H monocyte vaccination is safe and immunogenic in humans (Aim 3). These studies are expected to provide proof of principle that an entirely novel vaccine strategy, monocyte vaccination, possibly in combination with Flt3L administration, provides superior efficacy to alternative strategies in animal models of IDH1R132H gliomas, determine the mechanisms by which this efficacy is achieved, and demonstrate that this strategy is safe and immunogenic in a relevant patient population. If successful, this Project will provide the rationale and critical information needed for future studies of monocyte vaccination, which has the potential to significantly improve outcomes in patients with IDH1R132H-expressing gliomas.

Public Health Relevance

? Project 3 Primary brain tumors are the most frequent cause of cancer death in children and young adults. Brain tumors typically begin as slow growing low grade gliomas (LGGs) that transform in almost all cases to a universally lethal high grade glioma (HGGs) within 10 years. Traditional therapies do not prevent the ultimate progression from LGG to HGG. This project proposes a cell-based vaccine strategy to target a mutation in isocitrate dehydrogenase 1 (IDH1) found in the vast majority of LGGs and secondary HGGs. This vaccine strategy has the potential to significantly improve outcomes in patients with mutant IDH1-expressing gliomas.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Specialized Center (P50)
Project #
2P50CA190991-06
Application #
9632613
Study Section
Special Emphasis Panel (ZCA1)
Project Start
Project End
Budget Start
2019-09-01
Budget End
2020-08-31
Support Year
6
Fiscal Year
2019
Total Cost
Indirect Cost
Name
Duke University
Department
Type
DUNS #
044387793
City
Durham
State
NC
Country
United States
Zip Code
27705
Dobrikov, Mikhail I; Dobrikova, Elena Y; Gromeier, Matthias (2018) Ribosomal RACK1:Protein Kinase C ?II Modulates Intramolecular Interactions between Unstructured Regions of Eukaryotic Initiation Factor 4G (eIF4G) That Control eIF4E and eIF3 Binding. Mol Cell Biol 38:
Ding, Yi; Gong, Chang; Huang, De et al. (2018) Synthetic lethality between HER2 and transaldolase in intrinsically resistant HER2-positive breast cancers. Nat Commun 9:4274
Dobrikov, Mikhail I; Dobrikova, Elena Y; Gromeier, Matthias (2018) Ribosomal RACK1:Protein Kinase C ?II Phosphorylates Eukaryotic Initiation Factor 4G1 at S1093 To Modulate Cap-Dependent and -Independent Translation Initiation. Mol Cell Biol 38:
Desjardins, Annick; Gromeier, Matthias; Herndon 2nd, James E et al. (2018) Recurrent Glioblastoma Treated with Recombinant Poliovirus. N Engl J Med 379:150-161
Gromeier, Matthias; Nair, Smita K (2018) Recombinant Poliovirus for Cancer Immunotherapy. Annu Rev Med 69:289-299
Lin, Jiaxing; Gresham, Jeremy; Wang, Tongrong et al. (2018) bcSeq: an R package for fast sequence mapping in high-throughput shRNA and CRISPR screens. Bioinformatics 34:3581-3583
Swartz, Adam M; Reap, Elizabeth; Norberg, Pamela et al. (2018) A simple and enzyme-free method for processing infiltrating lymphocytes from small mouse tumors for ELISpot analysis. J Immunol Methods 459:90-93
Chong, Mengyang; Yin, Tao; Chen, Rui et al. (2018) CD36 initiates the secretory phenotype during the establishment of cellular senescence. EMBO Rep 19:
Thompson, Eric M; Brown, Michael; Dobrikova, Elena et al. (2018) Poliovirus Receptor (CD155) Expression in Pediatric Brain Tumors Mediates Oncolysis of Medulloblastoma and Pleomorphic Xanthoastrocytoma. J Neuropathol Exp Neurol 77:696-702
Woroniecka, Karolina; Chongsathidkiet, Pakawat; Rhodin, Kristen et al. (2018) T-Cell Exhaustion Signatures Vary with Tumor Type and Are Severe in Glioblastoma. Clin Cancer Res 24:4175-4186

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